Intelligent agent for transporting fresh seafood

By introducing a mixing cylinder, feeding components, and temperature control components into the intelligent seafood transport system, the problem of different seafood survival parameter requirements was solved, the survival rate of seafood transport was improved and the cost was reduced, and precise adjustment of transport cabin parameters was achieved.

CN224402640UActive Publication Date: 2026-06-26FANGCHENGGANG GANGFAXINGLONG AQUATIC PRODUCTS PROCESSING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FANGCHENGGANG GANGFAXINGLONG AQUATIC PRODUCTS PROCESSING CO LTD
Filing Date
2025-07-30
Publication Date
2026-06-26

AI Technical Summary

Technical Problem

Existing technologies are insufficient to meet the survival parameter requirements of different seafood, resulting in the death of some seafood during transportation and increasing transportation costs.

Method used

A smart body for transporting live seafood was designed, including a transport compartment, a collection box, and a supply unit. Clean water is delivered into the transport compartment through a mixing cylinder, a feeding assembly, and a pumping assembly. The oxygen content and temperature are regulated by the mixing assembly and the temperature control assembly to meet the survival needs of different types of seafood.

Benefits of technology

It improves the survival rate of seafood during transportation, reduces transportation costs, and ensures the survival of seafood by accurately detecting and adjusting parameters inside the transport cabin through sensing and detection components.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a kind of fresh seafood transportation intelligence, including transport cabin, supply unit, the supply unit is used to provide clean water and oxygen to transport cabin, the supply unit includes mixing cylinder, the mixing cylinder two sides are provided with water storage tank and oxygen storage tank respectively, the water storage tank and oxygen storage tank are connected with mixing cylinder by feeding assembly, the mixing cylinder is connected with transport cabin by pumping component;Mixing assembly is provided in the mixing cylinder, and the mixing assembly is used to mix the substance in the mixing cylinder.The utility model utilizes mixing cylinder, feeding assembly and pumping component and other structures can send clean water into transport cabin, and utilize mixing assembly can mix the water body in the mixing cylinder, and cooperate temperature control component can deliver different oxygen content, temperature water body into transport cabin, can satisfy the survival needs of different seafood, ensure the survival rate of seafood in the process of transportation, reduce the cost of seafood transportation.
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Description

Technical Field

[0001] This utility model relates to the field of seafood transportation, and in particular to an intelligent agent for transporting live seafood. Background Technology

[0002] Seafood refers to food primarily made from marine animals, encompassing edible seafood such as fish, shrimp, crabs, and shellfish. In a narrow sense, it specifically refers to fresh marine ingredients, while in a broader sense, it includes frozen, dried, and other processed products. Seafood is rich in high-quality protein, an essential nutrient for bodily repair and growth; it contains unsaturated fatty acids, beneficial for heart health and brain function, and can lower cholesterol and blood pressure, reducing inflammation; seafood is a good source of vitamins B12, D, iron, zinc, and iodine, helping to maintain normal bodily functions; some nutrients in seafood help strengthen the immune system and improve the body's resistance; for children and pregnant women, the DHA in seafood is crucial for brain and eye development.

[0003] Generally speaking, live seafood tastes better. After seafood dies, enzymes in its body accelerate the breakdown of proteins and fats, leading to the loss of nutrients. In areas far from the sea, dead seafood is also more prone to bacterial growth, producing harmful substances such as histamine. Therefore, in areas far from the sea, to ensure the freshness of seafood, it is generally transported live to designated areas.

[0004] In the Chinese utility model patent "Announcement No.: CN220966079U, Name: Live Seafood Oxygen Transport Box", the width of the air outlet is greater than the distance between the centers of two adjacent through holes. No matter where the air outlet moves, a portion of it is always connected to the through holes, ensuring that oxygen can enter the box. In the above application and commonly used prior art, oxygen is generally only introduced into the transport box to ensure the survival of seafood. However, it is difficult to control the water temperature. Different species of seafood have different requirements for water temperature and other data, which leads to the death of some seafood during transportation, increasing the cost of seafood transportation. Utility Model Content

[0005] The technical problem to be solved by this utility model is to overcome the shortcomings of the existing technology in that it is difficult to adapt to the survival parameter requirements of different seafood, and to provide an intelligent agent for transporting fresh seafood.

[0006] The present invention solves the above-mentioned technical problems through the following technical solution:

[0007] This utility model provides an intelligent device for transporting live seafood, including a transport compartment.

[0008] The collection tank and control valve pipe are provided. The collection tank is connected to the bottom of the transport compartment, and the transport compartment and the collection tank are connected by the control valve pipe. The control valve pipe is used to control the connection between the transport compartment and the collection tank. The collection tank is used to collect wastewater in the transport compartment.

[0009] The supply unit is used to supply clean water and oxygen to the transport compartment. The supply unit includes a mixing cylinder, and a water storage tank and an oxygen storage tank are respectively provided on both sides of the mixing cylinder. The water storage tank and the oxygen storage tank are both connected to the mixing cylinder through a feeding assembly. The mixing cylinder is connected to the transport compartment through a pumping assembly.

[0010] The mixing cylinder is equipped with a mixing component, which is used to mix the substances inside the mixing cylinder.

[0011] In this technical solution, clean water can be delivered into the transport compartment using structures such as a mixing cylinder, a feeding assembly, and a pumping assembly. The mixing assembly can mix the water in the mixing cylinder, and the temperature control assembly can deliver water with different oxygen contents and temperatures into the transport compartment, which can meet the survival needs of different seafood, ensure the survival rate of seafood during transportation, and reduce the cost of seafood transportation.

[0012] Preferably, the feeding assembly includes a feeding pump group and a feeding connection pipe. The feeding pump group is connected to the top of the collection box, and the inlet and outlet ends of the feeding pump group are both connected to the feeding connection pipe.

[0013] One side of the mixing cylinder and the water storage tank are respectively connected to one end of the feeding connection pipe at the inlet end of the feeding pump group, and one end of the outlet end of the feeding pump group is rotatably connected to the mixing cylinder.

[0014] In this technical solution, clean water and oxygen can be fed into the mixing drum using a feeding assembly.

[0015] Preferably, the pumping assembly includes a water supply pump set and a pumping connection pipe. The water supply pump set is connected to the top of the collection tank, and both the inlet and outlet ends of the water supply pump set are connected to the pumping connection pipe.

[0016] One end of the pump inlet connection pipe of the water supply pump set is connected to the mixing cylinder, and one end of the pump inlet connection pipe of the water supply pump set is connected to the transport compartment.

[0017] In this technical solution, the water mixed in the mixing cylinder can be sent into the transport compartment using a pumping assembly.

[0018] Preferably, both ends of the mixing cylinder are rotatably connected to anti-detachment rotating tubes, the surface of the anti-detachment rotating tubes is rotatably connected to the support side plate, and the bottom of the support side plate is connected to the top of the collection box;

[0019] The bottom of the mixing cylinder is connected to multiple fixed side plates, and the bottom of the fixed side plates is connected to the top of the collection box.

[0020] In this technical solution, the anti-detachment rotating tube can be supported by the supporting side plate, and the mixing cylinder can be supported by the fixed side plate.

[0021] Preferably, the mixing component includes two transfer boxes, each of which is connected to one end of the anti-detachment rotating tube, and a plurality of distribution inlet tubes arranged in a ring array are connected between the two transfer boxes.

[0022] The inner wall of the mixing cylinder is rotatably connected to multiple rotating columns arranged in a ring array. Multiple mixing blades arranged in a ring array are connected to the sides of the rotating columns, and the mixing blades are in contact with the distribution and addition pipe.

[0023] In this technical solution, the mixing component can be used to mix water and other substances in the mixing cylinder.

[0024] Preferably, a flip plate is connected between the two transfer boxes, and the flip plate has an S-shaped cross-section.

[0025] In this technical solution, the water in the mixing drum can be agitated using a flapper.

[0026] Preferably, the inner wall of the mixing cylinder is connected to multiple temperature control components, which are arranged in a ring array.

[0027] In this technical solution, a temperature control component can be used to heat the water in the mixing drum and control the water temperature.

[0028] Preferably, the hybrid assembly further includes a rotary power source, the output end of which is connected to a main gear, the side of which meshes with a secondary gear, and one side of which is connected to one end of an anti-detachment rotating tube.

[0029] The rotational power source is connected to the mounting frame, and one side of the mounting frame is connected to one side of the support side plate.

[0030] In this technical solution, a rotating power source and other structures can be used to drive the transfer box, distribution and injection pipes, and other structures to rotate.

[0031] Preferably, a sensing and detection assembly is installed in the interior cavity of the transport compartment. The sensing and detection assembly includes a mounting plate and detection sensors, and multiple detection sensors are connected to one side of the mounting plate.

[0032] The mounting plate surface is threadedly connected to the threaded shaft, the bottom end of the threaded shaft is rotatably connected to the bottom of the transport compartment cavity, and the top end of the threaded shaft is connected to the output end of the drive source.

[0033] In this technical solution, the sensing and detection components can be used to detect parameters such as water temperature, oxygen content, and pH value inside the transport cabin.

[0034] Preferably, the drive source is connected to the inner cavity of the protective shell, and the protective shell is connected to the side wall of the inner cavity of the transport compartment;

[0035] The top end of the threaded shaft is rotatably connected to the bottom surface of the protective housing.

[0036] In this technical solution, the driving source can be protected by a protective shell.

[0037] Based on common knowledge in the field, the above-mentioned preferred conditions can be combined arbitrarily to obtain various preferred embodiments of this utility model.

[0038] The positive and progressive effects of this utility model are as follows:

[0039] This invention utilizes a mixing cylinder, a feeding assembly, and a pumping assembly to deliver clean water into the transport compartment. The mixing assembly can mix the water in the mixing cylinder, and the temperature control assembly can deliver water with different oxygen contents and temperatures into the transport compartment, which can meet the survival needs of different seafood, ensure the survival rate of seafood during transportation, and reduce the cost of seafood transportation.

[0040] Meanwhile, the distributed inlet pipe can be used to detect parameters such as temperature inside the transport compartment, allowing water with different parameters to be introduced into the transport compartment. The height of the distributed inlet pipe can be adjusted, enabling the acquisition of parameters at different locations inside the transport compartment, thus making the detection of parameters such as temperature inside the transport compartment more accurate. Attached Figure Description

[0041] Figure 1 This is a schematic diagram of the structure of the intelligent agent for transporting live seafood according to an embodiment of this utility model.

[0042] Figure 2 for Figure 1 The diagram shows the overall three-dimensional structure of the intelligent agent for transporting live seafood.

[0043] Figure 3 for Figure 1 The diagram shows a side cross-sectional view of the overall structure of the intelligent agent for transporting live seafood.

[0044] Figure 4 for Figure 1 The diagram shows a three-dimensional structure of the mixing cylinder, feeding group, pumping component, and mixing component of the intelligent body for transporting live seafood.

[0045] Figure 5 for Figure 4 The diagram shows a three-dimensional structure of the hybrid components of the intelligent agent for transporting live seafood.

[0046] Figure 6 for Figure 5 The diagram shows a front cross-sectional view of the hybrid components of the live seafood transport intelligent agent.

[0047] Figure 7 for Figure 5 The diagram shows a side view cross-sectional view of the hybrid components of the live seafood transport intelligent agent.

[0048] Figure 8 for Figure 1 The diagram shows a three-dimensional structure of the sensing and detection components of the intelligent agent for transporting live seafood.

[0049] Explanation of reference numerals in the attached figures

[0050] 1. Transport compartment;

[0051] 2. Collection box;

[0052] 3. Control valve pipe;

[0053] 4. Mixing drum;

[0054] 5. Water storage tank;

[0055] 6. Oxygen storage tank;

[0056] 7. Feeding assembly; 71. Feeding pump unit; 72. Feeding connection pipe;

[0057] 8. Pump inlet assembly; 81. Water supply pump set; 82. Pump inlet connection pipe;

[0058] 9. Mixing assembly; 91. Transfer box; 92. Distribution inlet pipe; 93. Rotating column; 94. Mixing blade; 95. Flip plate; 96. Rotary power source; 97. Main gear; 98. Secondary gear; 99. Mounting bracket;

[0059] 10. Anti-detachment rotating tube;

[0060] 11. Support side panels;

[0061] 12. Fix the side panels;

[0062] 13. Temperature control components;

[0063] 14. Sensing and detection assembly; 141. Mounting plate; 142. Detection sensor; 143. Threaded shaft; 144. Drive source; 145. Protective housing; 146. Anti-deviation track. Detailed Implementation

[0064] The present invention will be further illustrated by way of embodiments below, but the present invention is not limited to the scope of the embodiments described herein.

[0065] Figures 1 to 8 The diagram shown is a structural schematic of an embodiment of the intelligent agent for transporting live seafood according to this utility model. The intelligent agent for transporting live seafood includes a transport compartment 1.

[0066] Collection tank 2 and control valve pipe 3, the collection tank 2 is connected to the bottom of the transport cabin 1, and the transport cabin 1 and the collection tank 2 are connected by the control valve pipe 3. The control valve pipe 3 is used to control the connection between the transport cabin 1 and the collection tank 2. The collection tank 2 is used to collect wastewater in the transport cabin 1.

[0067] The supply unit provides clean water and oxygen to the transport compartment 1. The supply unit includes a mixing cylinder 4, with a water storage tank 5 and an oxygen storage tank 6 located on either side of the mixing cylinder 4. Both the water storage tank 5 and the oxygen storage tank 6 are connected to the mixing cylinder 4 via a feeding assembly 7. The mixing cylinder 4 is connected to the transport compartment 1 via a pumping assembly 8. Specifically, in the design process, the collection box 2 is designed to be flat, matching the bottom or side wall structure of the vehicle body, forming a bottom or side wall interlayer within the transport compartment. A collection box layer is installed at the bottom of the vehicle body to reduce its occupied space. To maximize space utilization, the transport compartment 1 can be used as much as possible. Similarly, the water tank 5 and oxygen tank 4 can be installed on the left and right side walls of the transport compartment 1, respectively. The water tank 5 is preferably installed in the bottom interlayer of the transport compartment 1, which can reduce the impact of direct sunlight on the side wall temperature during transportation. When multiple transport compartments are installed, the space occupied by the water tank 5 and oxygen tank 6 can be minimized. Both can be installed as flat walls, which can reduce the space occupied and prevent the transport compartment 1 from being in direct contact with the external environment, making it easier to control the internal temperature.

[0068] The mixing cylinder 4 is equipped with a mixing component 9, which is used to mix the substances inside the mixing cylinder 4. The accompanying drawings are only schematic of the structure of the mixing cylinder 4; its volume and shape can be adjusted according to the installation environment. Preferably, the volume of the mixing cylinder 4 is less than one-tenth of the volume of the transport compartment, allowing for simultaneous mixing and delivery into the transport compartment when mixing purified water and oxygen. Similarly, its shape can be flat. When multiple transport compartments 1 are installed, and each compartment requires a different environment, they can be stacked horizontally, saving space occupied by the mixing cylinder 4. If the aquatic products transported in the transport compartments are the same, the mixing cylinder only needs to be placed within the side wall interlayer corresponding to the oxygen tank to minimize its space occupation.

[0069] Sensors, such as a thermometer and an oxygen concentration detector, are installed on the inner wall of the mixing cylinder 4 to detect the temperature and oxygen content of the liquid inside the mixing cylinder 4, respectively.

[0070] In this technical solution, clean water can be delivered into the transport compartment 1 by using the mixing cylinder 4, the feeding component 7, and the pumping component 8. The mixing component 9 can mix the water in the mixing cylinder 4, and the temperature control component 13 can deliver water with different oxygen contents and temperatures into the transport compartment 1, which can meet the survival needs of different seafood, ensure the survival rate of seafood during transportation, and reduce the cost of seafood transportation.

[0071] During transportation, multiple transport compartments 1 and collection boxes 2 can be placed in a transport vehicle, and then the transport vehicle can be used to move and transport the transport compartments 1 and collection boxes 2.

[0072] Each transport compartment 1 is an independent water unit, allowing multiple types of seafood to be transported simultaneously in one transport vehicle. The water temperature, oxygen content, and other parameters within the transport compartment 1 can be independently adjusted according to the needs of different species to ensure the survival of the individuals.

[0073] Cameras and other devices can be installed inside the transport vehicle to monitor the situation inside.

[0074] A Beidou locator can be installed on transport module 1 to enable positioning and tracking of transport module 1 and other structures via satellite communication.

[0075] During transportation, seafood is placed in transport compartment 1. Depending on the type and density of seafood placed in transport compartment 1, the water in mixing cylinder 4 is mixed using mixing component 9 and then pumped into transport compartment 1 using pumping component 8 to ensure the survival of the seafood.

[0076] The feeding assembly 7 includes a feeding pump group 71 and a feeding connecting pipe 72. The feeding pump group 71 is connected to the top of the collection box 2, and the inlet and outlet ends of the feeding pump group 71 are both connected to the feeding connecting pipe 72.

[0077] The mixing cylinder 4 and the water storage tank 5 are respectively connected to one end of the feeding connection pipe 72 at the inlet end of the feeding pump group 71, and one end of the outlet end of the feeding pump group 71 is rotatably connected to the mixing cylinder 4.

[0078] In this technical solution, clean water and oxygen can be fed into the mixing cylinder 4 using the feeding component 7.

[0079] In use, water and oxygen can be fed into the mixing drum 4 by means of the feeding pump set 71 and the feeding connection pipe 72 respectively.

[0080] The pumping assembly 8 includes a water supply pump set 81 and a pumping connection pipe 82. The water supply pump set 81 is connected to the top of the collection tank 2. The inlet and outlet ends of the water supply pump set 81 are both connected to the pumping connection pipe 82.

[0081] One end of the pump inlet connection pipe 82 of the water supply pump set 81 is connected to the mixing cylinder 4, and the other end of the pump inlet connection pipe 82 of the water supply pump set 81 is connected to the transport compartment 1.

[0082] In this technical solution, the pumping component 8 can be used to send the mixed water in the mixing cylinder 4 into the transport chamber 1.

[0083] The prepared water can be delivered into the transport compartment 1 using the water supply pump set 81 and the pump inlet connection pipe 82.

[0084] A filter screen cover is provided on the water inlet side of the control valve pipe 3.

[0085] Wastewater can be filtered when it is discharged from transport compartment 1 to prevent blockage of control valve pipe 3.

[0086] When supplying water to the transport compartment 1, the transport compartment 1 can be drained through the control valve pipe 3, and the drained water enters the collection tank 2.

[0087] Wastewater entering collection tank 2 can be sent to the purification system, purified, and then stored in water storage tank 5, or it can be discharged after treatment.

[0088] Both ends of the mixing cylinder 4 are rotatably connected to anti-detachment rotating tubes 10. The surface of the anti-detachment rotating tubes 10 is rotatably connected to the support side plate 11. The bottom of the support side plate 11 is connected to the top of the collection box 2.

[0089] The bottom of the mixing cylinder 4 is connected to multiple fixed side plates 12, and the bottom of the fixed side plates 12 is connected to the top of the collection box 2.

[0090] In this technical solution, the anti-detachment rotating tube 10 can be supported by the supporting side plate 11, and the mixing cylinder 4 can be supported by the fixed side plate 12.

[0091] The mixing component 9 includes two transfer boxes 91, which are respectively connected to one end of the anti-detachment rotating tube 10, and a plurality of distribution inlet tubes 92 arranged in a ring array are connected between the two transfer boxes 91.

[0092] The distribution inlet pipe 92 has multiple preset holes.

[0093] The inner wall of the mixing cylinder 4 is rotatably connected to a plurality of rotating columns 93 arranged in a ring array. The sides of the rotating columns 93 are connected to a plurality of mixing blades 94 arranged in a ring array. The mixing blades 94 are in contact with the distribution and addition pipe 92.

[0094] In this technical solution, the mixing component 9 can be used to mix the water and other substances in the mixing cylinder 4.

[0095] A flip plate 95 is connected between the two transfer boxes 91, and the cross-section of the flip plate 95 is S-shaped.

[0096] In this technical solution, the water in the mixing cylinder 4 can be agitated using the flipping plate 95.

[0097] The inner wall of the mixing cylinder 4 is connected to multiple temperature control components 13, which are arranged in a ring array.

[0098] In this technical solution, the temperature control component 13 can be used to heat the water in the mixing cylinder 4 and control the water temperature.

[0099] The temperature control component 13 includes a heater and a cooler to control the temperature of the water in the mixing tank 4.

[0100] The hybrid component 9 also includes a rotary power source 96, the output end of which is connected to a main gear 97. The side of the main gear 97 is meshed with a secondary gear 98, and one side of the secondary gear 98 is connected to one end of one of the anti-detachment rotating tubes 10.

[0101] The rotary power source 96 is connected to the mounting bracket 99, and one side of the mounting bracket 99 is connected to one side of the support side plate 11.

[0102] In this technical solution, the rotating power source 96 and other structures can drive the transfer box 91, the distribution and addition pipe 92 and other structures to rotate.

[0103] When in use, water and oxygen first enter the transfer box 91, and then are evenly fed into the mixing cylinder 4 through the distribution inlet pipe 92.

[0104] Then the water in the mixing cylinder 4 is heated using the temperature control component 13;

[0105] At the same time, the rotary power source 96 drives the main gear 97 to rotate, which in turn drives the secondary gear 98 to rotate, thereby driving the anti-detachment rotating tube 10 to rotate, which in turn drives the transfer box 91 and the distribution and feeding tube 92 to rotate.

[0106] When the distribution pipe 92 rotates, it can move the mixing blade 94, thereby mixing the water and other substances in the mixing cylinder 4;

[0107] Furthermore, when the transfer box 91 rotates, the flip plate 95 also rotates, and the flip plate 95 is used to further mix the water and other substances in the mixing cylinder 4, thereby improving the mixing efficiency of the water and other substances in the mixing cylinder 4.

[0108] A sensing and detection assembly 14 is installed inside the transport compartment 1. The sensing and detection assembly 14 includes a mounting plate 141 and detection sensors 142. Multiple detection sensors 142 are connected to one side of the mounting plate 141. In a preferred embodiment, the mounting plate 141 can extend into the transport compartment 1 a certain distance, allowing the detection sensors 142 to more accurately detect information within the transport compartment 1. Furthermore, since the transport compartment will shake during transport, extending the mounting plate 141 and arranging it in a fan-blade-like inclined structure can both fulfill its basic function and buffer the shaking of the water within the transport compartment 1. The detection sensors 142 can be water quality sensors, such as those for detecting ammonia content or turbidity, and can be specifically configured on the mounting plate 141 as needed.

[0109] Regarding the structure of transport cabin 1, this technical solution allows for structural modifications based on the type of aquatic product being transported. For example, a traditional tank-type transport cabin 1 structure can be used for transporting fish. When transporting shellfish and crabs, the transport cabin can be designed as a hollow basket structure with a spray device installed above it. During transport, the spray device can be controlled by a timer to maintain freshness. The spray device is connected to the fish mixing cylinder. When transporting lobsters, the transport cabin can be designed as a tubular structure, with the tied-up lobsters placed inside the tube. The tube is then connected to the mixing cylinder structure to control the water flow.

[0110] The surface of the mounting plate 141 is threadedly connected to the threaded shaft 143. The bottom end of the threaded shaft 143 is rotatably connected to the bottom of the inner cavity of the transport compartment 1, and the top end of the threaded shaft 143 is connected to the output end of the drive source 144.

[0111] In this technical solution, the sensing and detection component 14 can be used to detect parameters such as water temperature, oxygen content, and pH value inside the transport compartment 1.

[0112] The drive source 144 is connected to the inner cavity of the protective shell 145, and the protective shell 145 is connected to the inner cavity side wall of the transport compartment 1.

[0113] The top end of the threaded shaft 143 is rotatably connected to the bottom surface of the protective housing 145.

[0114] In this technical solution, the drive source 144 can be protected by the protective housing 145.

[0115] The bottom of the inner cavity of the transport compartment 1 and the bottom of the protective shell 145 are connected to a plurality of anti-deviation rails 146, and the surface of the anti-deviation rails 146 is slidably connected to the mounting plate 141.

[0116] In use, the mounting plate 141 moves along the anti-deviation track 146, and the anti-deviation track 146 limits the movement trajectory of the mounting plate 141.

[0117] Depending on the detection requirements, the detection sensor 142 may include a temperature sensor, a water quality sensor, etc., to detect the parameters of the water in the transport cabin 1;

[0118] In use, the drive source 144 can be used to drive the threaded shaft 143 to rotate, which can drive the mounting plate 141 to move along the anti-deviation track 146. This can drive the mounting plate 141 to rotate, which in turn can drive the detection sensor 142 to move in the same direction. The detection sensor 142 can be used to detect data at different positions inside the transport compartment 1.

[0119] Meanwhile, a water level sensor is also installed inside transport compartment 1 to detect the water level inside transport compartment 1.

[0120] Furthermore, based on Internet of Things (IoT) technology, a central control system is set up. This central control system is electrically connected to the control valve pipe 3, the feed pump group 71, the water supply pump group 81, the rotary power source 96, the temperature control component 13, the detection sensor 142, the drive source 144, and other structures. This allows the central control system to collect and analyze various parameters and control the water supply pump group 81 and other structures based on the analysis results.

[0121] The central control system is also connected to a power supply, which in turn supplies power to equipment such as the feed pump group 71, the pump inlet connection pipe 82, and the rotary power source 96.

[0122] The rotary power source 96 and drive source 144 are motors or other devices that can output rotational kinetic energy.

[0123] While specific embodiments of this utility model have been described above, those skilled in the art should understand that these are merely illustrative examples, and the scope of protection of this utility model is defined by the appended claims. Those skilled in the art can make various changes or modifications to these embodiments without departing from the principles and essence of this utility model, but all such changes and modifications fall within the scope of protection of this utility model.

Claims

1. A live seafood transportation agent comprising a transportation tank (1), characterized in that, The live seafood transport intelligent body also includes: a collection box (2) and a control valve pipe (3). The collection box (2) is connected to the bottom of the transport cabin (1), and the transport cabin (1) and the collection box (2) are connected through the control valve pipe (3). The control valve pipe (3) is used to control the connection between the transport cabin (1) and the collection box (2). The collection box (2) is used to collect wastewater in the transport cabin (1). The supply unit is used to supply clean water and oxygen to the transport compartment (1). The supply unit includes a mixing cylinder (4). A water storage tank (5) and an oxygen storage tank (6) are respectively provided on both sides of the mixing cylinder (4). The water storage tank (5) and the oxygen storage tank (6) are connected to the mixing cylinder (4) through a feeding assembly (7). The mixing cylinder (4) is connected to the transport compartment (1) through a pumping assembly (8). The mixing cylinder (4) is provided with a mixing component (9), which is used to mix the substances in the mixing cylinder (4).

2. The live seafood transportation agent of claim 1, wherein: The feeding assembly (7) includes a feeding pump group (71) and a feeding connection pipe (72). The feeding pump group (71) is connected to the top of the collection box (2). The inlet and outlet ends of the feeding pump group (71) are both connected to the feeding connection pipe (72). The mixing cylinder (4) and the water storage tank (5) are respectively connected to one end of the feeding connection pipe (72) at the inlet end of the feeding pump group (71), and one end of the outlet end of the feeding pump group (71) is rotatably connected to the mixing cylinder (4).

3. The intelligent agent for transporting live seafood as described in claim 1, characterized in that: The pumping assembly (8) includes a water supply pump set (81) and a pumping connection pipe (82). The water supply pump set (81) is connected to the top of the collection tank (2). The inlet and outlet ends of the water supply pump set (81) are both connected to the pumping connection pipe (82). One end of the pump inlet connection pipe (82) of the water supply pump set (81) is connected to the mixing cylinder (4), and one end of the pump inlet connection pipe (82) of the water supply pump set (81) is connected to the transport compartment (1).

4. The intelligent agent for transporting live seafood as described in claim 1, characterized in that: Both ends of the mixing cylinder (4) are rotatably connected to anti-detachment rotating tubes (10), the surface of the anti-detachment rotating tubes (10) is rotatably connected to the support side plate (11), and the bottom of the support side plate (11) is connected to the top of the collection box (2). The bottom of the mixing cylinder (4) is connected to a plurality of fixed side plates (12), and the bottom of the fixed side plates (12) is connected to the top of the collection box (2).

5. The intelligent agent for transporting live seafood as described in claim 1, characterized in that: The mixing component (9) includes two transfer boxes (91), which are respectively connected to one end of the anti-detachment rotating tube (10), and a plurality of distribution input tubes (92) arranged in a ring array are connected between the two transfer boxes (91). The inner wall of the mixing cylinder (4) is rotatably connected to a plurality of rotating columns (93) arranged in a ring array. The sides of the rotating columns (93) are connected to a plurality of mixing blades (94) arranged in a ring array. The mixing blades (94) are in contact with the distribution and addition pipe (92).

6. The intelligent agent for transporting live seafood as described in claim 5, characterized in that: A flip plate (95) is connected between the two transfer boxes (91), and the cross-section of the flip plate (95) is S-shaped.

7. The intelligent agent for transporting live seafood as described in claim 5, characterized in that: The mixing cylinder (4) has multiple temperature control components (13) connected to its inner wall, and the multiple temperature control components (13) are arranged in a ring array.

8. The intelligent agent for transporting live seafood as described in claim 5, characterized in that: The hybrid assembly (9) also includes a rotary power source (96), the output end of which is connected to a main gear (97), the side of which is meshed with a secondary gear (98), and one side of which is connected to one end of an anti-detachment rotating tube (10). The rotary power source (96) is connected to the mounting bracket (99), and one side of the mounting bracket (99) is connected to one side of the support side plate (11).

9. The intelligent agent for transporting live seafood as described in claim 1, characterized in that: A sensing and detection assembly (14) is installed in the inner cavity of the transport compartment (1). The sensing and detection assembly (14) includes a mounting plate (141) and a detection sensor (142). A plurality of detection sensors (142) are connected to one side of the mounting plate (141). The surface of the mounting plate (141) is threadedly connected to the threaded shaft (143), the bottom end of the threaded shaft (143) is rotatably connected to the bottom of the inner cavity of the transport compartment (1), and the top end of the threaded shaft (143) is connected to the output end of the drive source (144).

10. The intelligent agent for transporting live seafood as described in claim 9, characterized in that: The drive source (144) is connected to the inner cavity of the protective shell (145), and the protective shell (145) is connected to the inner wall of the transport compartment (1); The top end of the threaded shaft (143) is rotatably connected to the bottom surface of the protective shell (145).

Citation Information

Patent Citations

  • Live seafood oxygen transport box

    CN220966079U